US12316415B2 - Wireless communication method and device and communication system - Google Patents
Wireless communication method and device and communication system Download PDFInfo
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- US12316415B2 US12316415B2 US17/883,787 US202217883787A US12316415B2 US 12316415 B2 US12316415 B2 US 12316415B2 US 202217883787 A US202217883787 A US 202217883787A US 12316415 B2 US12316415 B2 US 12316415B2
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0053—Allocation of signalling, i.e. of overhead other than pilot signals
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/04—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
- H04B7/06—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
- H04B7/0613—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission
- H04B7/0615—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal
- H04B7/0619—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal using feedback from receiving side
- H04B7/0621—Feedback content
- H04B7/0626—Channel coefficients, e.g. channel state information [CSI]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
- H04L1/1812—Hybrid protocols; Hybrid automatic repeat request [HARQ]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
- H04L1/1829—Arrangements specially adapted for the receiver end
- H04L1/1854—Scheduling and prioritising arrangements
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
- H04L1/1867—Arrangements specially adapted for the transmitter end
- H04L1/1896—ARQ related signaling
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L27/00—Modulated-carrier systems
- H04L27/26—Systems using multi-frequency codes
- H04L27/2601—Multicarrier modulation systems
- H04L27/2602—Signal structure
- H04L27/26025—Numerology, i.e. varying one or more of symbol duration, subcarrier spacing, Fourier transform size, sampling rate or down-clocking
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0001—Arrangements for dividing the transmission path
- H04L5/0003—Two-dimensional division
- H04L5/0005—Time-frequency
- H04L5/0007—Time-frequency the frequencies being orthogonal, e.g. OFDM(A) or DMT
- H04L5/001—Time-frequency the frequencies being orthogonal, e.g. OFDM(A) or DMT the frequencies being arranged in component carriers
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- H—ELECTRICITY
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- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0078—Timing of allocation
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- H—ELECTRICITY
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- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0091—Signalling for the administration of the divided path, e.g. signalling of configuration information
- H04L5/0096—Indication of changes in allocation
- H04L5/0098—Signalling of the activation or deactivation of component carriers, subcarriers or frequency bands
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- H04W72/04—Wireless resource allocation
- H04W72/044—Wireless resource allocation based on the type of the allocated resource
- H04W72/0446—Resources in time domain, e.g. slots or frames
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- H04W72/20—Control channels or signalling for resource management
- H04W72/21—Control channels or signalling for resource management in the uplink direction of a wireless link, i.e. towards the network
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- H—ELECTRICITY
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- H04W72/20—Control channels or signalling for resource management
- H04W72/23—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
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- H—ELECTRICITY
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- H04W—WIRELESS COMMUNICATION NETWORKS
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- H04W72/20—Control channels or signalling for resource management
- H04W72/23—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
- H04W72/232—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal the control data signalling from the physical layer, e.g. DCI signalling
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- H—ELECTRICITY
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- H04W76/30—Connection release
- H04W76/34—Selective release of ongoing connections
Definitions
- This disclosure relates to the field of communications.
- a mechanism of transmitting uplink control signals is enhanced in Rel-16. Specifically, a subslot-based PUCCH (physical uplink control channel) resource indication is introduced.
- HARQ-ACK hybrid automatic repeat acknowledgement
- CSI channel state information
- SR sounding reference
- embodiments of this disclosure provide a wireless communication method and device and a communication system.
- a wireless communication method including:
- a wireless communication method including:
- a wireless communication method including:
- a wireless communication method including:
- a wireless communication device including:
- a wireless communication device including:
- a wireless communication device including:
- a wireless communication device including:
- An advantage of the embodiments of this disclosure exists in that according to the embodiments of this disclosure, indication errors or ambiguities of the downlink data signals on activation/deactivation may be avoided.
- FIG. 1 is schematic diagram of a mode of slot division
- FIG. 2 is a schematic diagram of another mode of slot division
- FIG. 4 is a schematic diagram of a slot of cell 1
- FIG. 5 is another schematic diagram of the slot of cell 1
- FIG. 6 is a schematic diagram of slots of cell 1 and cell 2;
- FIG. 7 is another schematic diagram of the slots of cell 1 and cell 2;
- FIG. 8 is a further schematic diagram of the slots of cell 1 and cell 2;
- FIG. 9 is a schematic diagram of the wireless communication method of the embodiment of the second aspect of this disclosure.
- FIG. 10 is a schematic diagram of the wireless communication method of the embodiment of the third aspect of this disclosure.
- FIG. 11 is a schematic diagram of a slot of cell 1;
- FIG. 12 is another schematic diagram of the slot of cell 1;
- FIG. 13 is a schematic diagram of slots of cell 1 and cell 2;
- FIG. 14 is another schematic diagram of the slots of cell 1 and cell 2;
- FIG. 15 is a further schematic diagram of the slots of cell 1 and cell 2;
- FIG. 16 is a schematic diagram of the wireless communication method of the embodiment of the fourth aspect of this disclosure.
- FIG. 17 is a schematic diagram of the wireless communication device of the embodiment of the fifth aspect of this disclosure.
- FIG. 18 is another schematic diagram of the wireless communication device of the embodiment of the fifth aspect of this disclosure.
- FIG. 19 is a schematic diagram of the wireless communication device of the embodiment of the sixth aspect of this disclosure.
- FIG. 20 is another schematic diagram of the wireless communication device of the embodiment of the sixth aspect of this disclosure.
- FIG. 21 is a schematic diagram of the communication system of the embodiment of the seventh aspect of this disclosure.
- FIG. 22 is a schematic diagram of the terminal equipment of the embodiment of the seventh aspect of this disclosure.
- FIG. 23 is a schematic diagram of the network device of the embodiment of the seventh aspect of this disclosure.
- terms “first”, and “second”, etc. are used to differentiate different elements with respect to names, and do not indicate spatial arrangement or temporal orders of these elements, and these elements should not be limited by these terms.
- Terms “and/or” include any one and all combinations of one or more relevantly listed terms.
- Terms “contain”, “include” and “have” refer to existence of stated features, elements, components, or assemblies, but do not exclude existence or addition of one or more other features, elements, components, or assemblies.
- single forms “a”, and “the”, etc. include plural forms, and should be understood as “a kind of” or “a type of” in a broad sense, but should not defined as a meaning of “one”; and the term “the” should be understood as including both a single form and a plural form, except specified otherwise.
- the term “according to” should be understood as “at least partially according to”, the term “based on” should be understood as “at least partially based on”, except specified otherwise.
- the term “communication network” or “wireless communication network” may refer to a network satisfying any one of the following communication standards: long term evolution (LTE), long term evolution-advanced (LTE-A), wideband code division multiple access (WCDMA), and high-speed packet access (HSPA), etc.
- LTE long term evolution
- LTE-A long term evolution-advanced
- WCDMA wideband code division multiple access
- HSPA high-speed packet access
- communication between devices in a communication system may be performed according to communication protocols at any stage, which may, for example, include but not limited to the following communication protocols: 1G (generation), 2G, 2.5G, 2.75G, 3G, 4G, 4.5G, and 5G and new radio (NR) in the future, etc., and/or other communication protocols that are currently known or will be developed in the future.
- 1G generation
- 2G 2.5G, 2.75G
- NR new radio
- the term “network device”, for example, refers to a device in a communication system that accesses a user equipment to the communication network and provides services for the user equipment.
- the network device may include but not limited to the following equipment: a base station (BS), an access point (AP), a transmission reception point (TRP), a broadcast transmitter, a mobile management entity (MME), a gateway, a server, a radio network controller (RNC), a base station controller (BSC), etc.
- the base station may include but not limited to a node B (NodeB or NB), an evolved node B (eNodeB or eNB), and a 5G base station (gNB), etc. Furthermore, it may include a remote radio head (RRH), a remote radio unit (RRU), a relay, or a low-power node (such as a femto, and a pico, etc.).
- NodeB or NB node B
- eNodeB or eNB evolved node B
- gNB 5G base station
- RRH remote radio head
- RRU remote radio unit
- relay or a low-power node (such as a femto, and a pico, etc.).
- base station may include some or all of its functions, and each base station may provide communication coverage for a specific geographical area.
- a term “cell” may refer to a base station and/or its coverage area, which may be expressed as a serving cell, and may be a macro cell or
- the term “user equipment (UE)” refers to, for example, an equipment accessing to a communication network and receiving network services via a network device, and may also be referred to as “a terminal equipment (TE)”.
- the terminal equipment may be fixed or mobile, and may also be referred to as a mobile station (MS), a terminal, a subscriber station (SS), an access terminal (AT), or a station, etc.
- the terminal equipment may include but not limited to the following devices: a cellular phone, a personal digital assistant (PDA), a wireless modem, a wireless communication device, a hand-held device, a machine-type communication device, a lap-top, a cordless telephone, a smart cell phone, a smart watch, and a digital camera, etc.
- PDA personal digital assistant
- wireless modem a wireless communication device
- hand-held device a machine-type communication device
- a machine-type communication device a lap-top
- a cordless telephone a smart cell phone, a smart watch, and a digital camera, etc.
- the user equipment may also be a machine or a device performing monitoring or measurement.
- the user equipment may include but not limited to a machine-type communication (MTC) terminal, a vehicle mounted communication terminal, a device to device (D2D) terminal, and a machine to machine (M2M) terminal, etc.
- MTC machine-type communication
- D2D device to device
- M2M machine to machine
- the subslot-based uplink signal transmission refers to that a terminal equipment transmits an uplink signal at a subslot according to corresponding indication information.
- an uplink signal is transmitted in one subslot means that at least a starting symbol of the uplink signal is in the sub-slot. Either the starting symbol to an ending symbol of the uplink signal are in the subslot, or the starting symbol of the uplink signal is in the sub-slot, and the ending symbol of the uplink signal is not in the subslot (in a subsequent subslot).
- description shall be given by taking the former (the starting and ending symbols of the uplink signal are both in the same subslot) as an example.
- a time-domain length of a subslot is less than 14 symbols.
- the terminal equipment receives configuration information (e.g. subslotLengthForPUCCH) transmitted by the network device, the configuration information indicating a length of a subslot corresponding to a subslot-based uplink signal (e.g. PUCCH feedback). Furthermore, the length is in units of symbols. In general, the length of the subslot indicated by the indication information may be of 7 symbols, or 2 symbols.
- FIG. 1 is schematic diagram of a mode of slot division (corresponding to a subslot length of 7 symbols). As shown in FIG. 1 , a 14-symbol slot is divided into two 7-symbol subslots. An uplink signal #1 is transmitted in subslot #0, and an uplink signal #2 is transmitted in subslot #1.
- FIG. 1 is schematic diagram of a mode of slot division (corresponding to a subslot length of 7 symbols). As shown in FIG. 1 , a 14-symbol slot is divided into two 7-symbol subslots. An uplink signal #1
- FIG. 2 is schematic diagram of another mode of slot division. As shown in FIG. 2 (corresponding to a subslot length of 2 symbols), a 14-symbol slot is divided into seven 2-symbol subslots. An uplink signal #1 is transmitted in subslot #1, and an uplink signal #2 is transmitted in subslot #4.
- MAC CE media access control control element
- FIG. 3 is a schematic diagram of the wireless communication method of the embodiment of this disclosure. As shown in FIG. 3 , the method includes:
- the time unit refers to a time unit corresponding to transmission of an uplink control signal, the uplink control signal carrying HARQ-ACK information corresponding to the downlink data signal. That is, the above time unit is a time unit corresponding to an uplink control signal, the uplink control signal carrying HARQ-ACK information corresponding to the downlink data signal.
- the terminal equipment after receiving the downlink data signal at the time unit n, applies corresponding actions not earlier than the time unit n+k+1, or, applies the actions related to the deactivation timer of the secondary cell at the time unit n+k+1, or, applies the actions related to the CSI report after the time unit n+k, with reference to the time unit corresponding to the transmission of the uplink control signal, the uplink control signal carrying the HARQ-ACK information corresponding to the downlink data signal, thereby avoiding indication errors or ambiguities of activation/deactivation by the downlink data signal.
- receiving the downlink data signal at the time unit n may be that the terminal equipment receives the downlink data signal ending at the time unit n.
- the number of symbols included in the time unit may be less than 14, which may be referred to as a subslot, or may be in other names, and is not limited in this disclosure.
- the above downlink data signal is, for example, a PDSCH, or a signal carried by a PDSCH; and the above uplink control signal is, for example, a PUCCH, or a signal carried by a PUCCH; however, this disclosure is not limited thereto.
- the k is related to the number (N slot subslot ) of time units included in a 14-symbol slot.
- N slot subslot the number of time units included in a 14-symbol slot.
- the effective time point of the corresponding action is specified, which avoids ambiguity of the action of the terminal equipment, and improves stability of the system.
- the 14-symbol slot may be divided integrally, then
- N slot subslot 14 L subslot symbol , L subslot symbol referring to the number of symbols corresponding to the time unit.
- the 14-symbol slot cannot be divided integrally, then
- the slot of 14 symbols cannot be divided integrally, then
- applying a corresponding action refers to applying an action related to or corresponding to the activation/deactivation command, for example, applying a corresponding SCell activation/deactivation action.
- applying a corresponding action does not include applying an action related to CSI report.
- applying a corresponding action does not include applying an action related to the SCell deactivation timer of the secondary cell.
- applying the action related to CSI report after the time unit n+k includes applying the action related to CSI report at a time unit after the time unit n+k, wherein, the time unit after the time unit n+k may be an earliest time unit in time units when (at which) CSI report is active after the time unit n+k.
- applying the action related to CSI report after the time unit n+k includes: applying the action related to CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being a time unit n+k+1; wherein the CSI report is active at the time unit n+k+1.
- applying the action related to CSI report after the time unit n+k includes: applying the action related to CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) the CSI report is active after a time unit n+k+1.
- the CSI report is not active at the time unit n+k+1.
- FIG. 4 is a schematic diagram of a slot of cell 1, wherein a subcarrier spacing (SCS) of cell 1 is 15 kHz.
- SCS subcarrier spacing
- FIG. 4 according to subslot-based configuration information (subslotLengthForPUCCH), one slot is divided into two subslots (each subslot including 7 symbols).
- a UE receives a PDSCH containing an SCell activation command in subslot #0 of slot #0.
- the UE feeds back HARQ-ACK information corresponding to the PDSCH in subslot #0 of slot #0 (transmitting an PUCCH carrying the HARQ-ACK information).
- the UE applies the action related to SCell activation/deactivation not earlier than subslot #1 of slot #30.
- the action related to the SCell activation does not include the action related to the CSI report, nor includes the action related to the SCell deactivation timer.
- FIG. 5 is another schematic diagram of the slot of cell 1, wherein a subcarrier spacing (SCS) of cell 1 is 15 kHz.
- SCS subcarrier spacing
- one slot may be divided into two subslots (each subslot including 7 symbols).
- the UE receives a PDSCH containing an SCell activation command in slot #0.
- the UE feeds back HARQ-ACK information corresponding to the PDSCH in subslot #0 of slot #0 (transmitting a PUCCH carrying the HARQ-ACK information). It can be seen after substituting relevant information into the above formula that the UE applies the action related to the SCell deactivation timer in subslot #1 of slot #30.
- FIG. 6 is a schematic diagram of slots of cell 1 and cell 2, wherein subcarrier spacings (SCSs) of cell 1 and cell 2 are both 15 kHz.
- SCSs subcarrier spacings
- one slot may be divided into two subslots (each subslot including 7 symbols).
- CSI report is slot-based.
- the UE receives a PDSCH containing an SCell activation command in subslot #0 of slot #0, the activation command being used to activate cell 2.
- the UE feeds back HARQ-ACK information corresponding to the PDSCH in subslot #0 of slot #0 (transmitting a PUCCH carrying the HARQ-ACK information).
- the UE applies the action related to the CSI report after subslot #0 of slot #30.
- the UE applies the action related to the CSI report in subslot #0 of slot #31 (with reference to cell 1).
- FIG. 7 is another schematic diagram of the slots of cell 1 and cell 2, wherein a subcarrier spacing (SCS) of cell 1 is 15 kHz and a subcarrier spacing (SCS) of cell 2 is 30 kHz.
- SCS subcarrier spacing
- one slot may be divided into two subslots (each subslot including 7 symbols).
- CSI report is slot-based.
- the UE receives a PDSCH containing an SCell activation command in subslot #0 of slot #0, the activation command being used to activate cell 2.
- the UE feeds back HARQ-ACK information corresponding to the PDSCH in subslot #0 of slot #0 (transmitting a PUCCH carrying the HARQ-ACK information). It can be seen after substituting relevant information into the above formula that the UE applies the action related to the CSI report after subslot #0 of slot #30. In addition, if the CSI report is activated in slot #61 (of cell 2), the UE applies the action related to the CSI report in subslot #1 of slot #30 (with reference to cell 1).
- the UE feeds back HARQ-ACK information corresponding to the PDSCH in subslot #0 of slot #0 (transmitting a PUCCH carrying the HARQ-ACK information). It can be seen after substituting relevant information into the above formula that the UE applies the action related to the CSI report after subslot #0 of slot #30. For example, the UE deactivates the action related to the CSI report in subslot #1 of slot #30 (with reference to cell 1) or slot #61 (with reference to cell 2).
- the stability of the system is improved.
- the embodiment of the second aspect of this disclosure provides a wireless communication method, which shall be described from a network device side. This method is processing at a network device side corresponding to the method of the embodiment of the first aspect, with contents identical to those in the embodiment of the first aspect being not going to be described herein any further.
- FIG. 9 is a schematic diagram of the wireless communication method of the embodiment of this disclosure. As shown in FIG. 9 , the method includes:
- the k is related to the number (N slot subslot ) of time units contained in a 14-symbol slot.
- N slot subslot 14 L subslot symbol , L subslot symbol referring to the number of symbols corresponding to the time unit.
- N slot subslot ⁇ 14 L subslot symbol ⁇ , L subslot symbol referring to the number of longest symbols corresponding to the time unit.
- N slot subslot ⁇ 14 L subslot symbol ⁇ , L subslot symbol referring to the number of shortest symbols corresponding to the time unit.
- receiving the CSI report after the time unit n+k includes receiving the CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) CSI report is active after the time unit n+k.
- receiving the CSI report after the time unit n+k includes: receiving the CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being a time unit n+k+1; wherein the CSI report is active at the time unit n+k+1.
- receiving the CSI report after the time unit n+k includes: receiving the CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) the CSI report is active after a time unit n+k+1, wherein, the CSI report is not active at the time unit n+k+1.
- that the network device transmits the downlink data signal at the time unit n refers to that the network device transmits the downlink data signal ending at the time unit n.
- the time unit may be of a subslot, or the number of symbols included in the time unit is less than 14.
- the stability of the system is improved.
- Embodiment of the third aspect of this disclosure provides a wireless communication method, which shall be described from a terminal equipment side.
- FIG. 10 is a schematic diagram of the wireless communication method of the embodiment of this disclosure. As shown in FIG. 10 , the method includes:
- the time unit refers to a time unit corresponding to transmission of an uplink control signal, that is, the above time unit makes reference to a time unit corresponding to the uplink control signal.
- the terminal equipment after receiving the downlink data signal at the time unit n, applies the corresponding action not earlier than the time unit n+k+1, or, applies the action related to the deactivation timer of the secondary cell at the time unit n+k+1, or, applies the action related to the CSI report after the time unit n+k, with reference to the time unit corresponding to the transmission of the uplink control signal, thereby avoiding indication errors or ambiguities of activation/deactivation by the downlink data signal.
- receiving the downlink data signal at the time unit n may be that the terminal equipment receives the downlink data signal ending at the time unit n.
- the number of symbols included in the time unit may be less than 14, which may be referred to as a subslot, or may be in other names, and is not limited in this disclosure.
- the above downlink data signal is, for example, a PDSCH, or a signal carried by a PDSCH; and the above uplink control signal is, for example, a PUCCH, or a signal carried by a PUCCH; however, this disclosure is not limited thereto.
- the k is related to a slot offset or offset between the downlink data signal and the uplink control signal carrying the HARQ-ACK information corresponding to the downlink data signal.
- the slot offset between the PDSCH carrying the Scell activation/deactivation command and the PUCCH carrying the HARQ-ACK information corresponding to the PDSCH is specified, so that the UE is able to accurately position an effective time point of a corresponding action, thereby avoiding ambiguity of the action of the UE, and improving the stability of the system.
- applying a corresponding action refers to applying an action related to or corresponding to the activation/deactivation command, for example, applying a corresponding SCell activation/deactivation action.
- applying a corresponding action does not include applying an action related to CSI report.
- applying a corresponding action does not include applying an action related to the SCell deactivation timer of the secondary cell. Reference may be made to related technologies for specific content of this action, which shall not be described herein any further.
- applying the action related to CSI report after the time unit n+k includes applying the action related to CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) CSI report is active after the time unit n+k.
- applying the action related to CSI report after the time unit n+k includes: applying the action related to CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being a time unit n+k+1; wherein the CSI report is active at the time unit n+k+1.
- applying the action related to CSI report after the time unit n+k includes: applying the action related to CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) the CSI report is active after a time unit n+k+1.
- the CSI report is not active at the time unit n+k+1.
- FIG. 11 is a schematic diagram of a slot of cell 1, wherein a subcarrier spacing (SCS) of cell 1 is 15 kHz.
- SCS subcarrier spacing
- FIG. 11 according to subslot-based configuration information (subslotLengthForPUCCH), one slot may be divided into two subslots (each subslot including 7 symbols).
- a UE receives a PDSCH containing an SCell activation command in slot #0.
- the UE feeds back HARQ-ACK information corresponding to the PDSCH in slot #0 (transmitting a PUCCH carrying the HARQ-ACK information). It can be seen after substituting relevant information into the above formula that the UE applies the action related to SCell activation/deactivation not earlier than slot #31.
- the action related to the SCell activation does not include the action related to the CSI report, nor includes the action related to the SCell deactivation timer.
- FIG. 12 is another schematic diagram of the slot of cell 1, wherein a subcarrier spacing (SCS) of cell 1 is 15 kHz.
- SCS subcarrier spacing
- one slot may be divided into two subslots (each subslot including 7 symbols).
- the UE receives a PDSCH containing an SCell activation command in slot #0.
- the UE feeds back the HARQ-ACK information corresponding to the PDSCH in slot #0 (transmitting a PUCCH carrying the HARQ-ACK information). It can be seen after substituting relevant information into the above formula that the UE applies the action related to the SCell deactivation timer in slot #31.
- FIG. 13 is a schematic diagram of slots of cell 1 and cell 2, wherein subcarrier spacings (SCSs) of cell 1 and cell 2 are both 15 kHz.
- SCSs subcarrier spacings
- one slot may be divided into two subslots (each subslot including 7 symbols).
- CSI report is slot-based.
- the UE receives a PDSCH containing an SCell activation command in slot #0, the activation command being used to activate cell 2.
- the UE feeds back HARQ-ACK information corresponding to the PDSCH in slot #0 (transmitting a PUCCH carrying the HARQ-ACK information).
- the UE applies the action related to the CSI report after slot #30.
- the UE applies the action related to the CSI report in slot #31 (with reference to cell 1).
- FIG. 14 is another schematic diagram of the slots of cell 1 and cell 2, wherein a subcarrier spacing (SCS) of cell 1 is 15 kHz and a subcarrier spacing (SCS) of cell 2 is 30 kHz.
- SCS subcarrier spacing
- FIG. 14 in cell 1, according to subslot-based configuration information (subslotLengthForPUCCH), one slot may be divided into two subslots (each subslot including 7 symbols).
- CSI report is slot-based.
- the UE receives a PDSCH containing an SCell activation command in slot #0, the activation command being used to activate cell 2.
- the UE feeds back HARQ-ACK information corresponding to the PDSCH in slot #0 (transmitting a PUCCH carrying the HARQ-ACK information). It can be seen after substituting relevant information into the above formula that the UE applies the action related to the CSI report after slot #30. In addition, if the CSI report is activated in slot #62 (of cell 2), the UE applies the action related to the CSI report in slot #31 (with reference to cell 1).
- FIG. 15 is a further schematic diagram of the slots of cell 1 and cell 2, wherein a subcarrier spacing (SCS) of cell 1 is 15 kHz and a subcarrier spacing (SCS) of cell 2 is 30 kHz.
- SCS subcarrier spacing
- one slot may be divided into two subslots (each subslot including 7 symbols).
- CSI report is slot-based.
- the UE receives a PDSCH containing an SCell deactivation command in slot #0, the deactivation command being used to deactivate cell 2.
- the UE feeds back HARQ-ACK information corresponding to the PDSCH in slot #0 (transmitting a PUCCH carrying the HARQ-ACK information). It can be seen after substituting relevant information into the above formula that the UE applies the action related to the CSI report after slot #30. For example, the UE deactivates the action related to the CSI report in slot #31 (with reference to cell 1) or slot #62 (with reference to cell 2).
- the stability of the system is improved.
- the embodiment of the fourth aspect of this disclosure provide a wireless communication method, which shall be described from a network device side. This method is processing at a network device side corresponding to the method of the embodiment of the third aspect, with contents identical to those in the embodiment of the third aspect being not going to be described herein any further.
- FIG. 16 is a schematic diagram of the wireless communication method of the embodiment of this disclosure. As shown in FIG. 16 , the method includes:
- the k is related to a slot offset or offset between the downlink data signal and the uplink control signal carrying the HARQ-ACK information corresponding to the downlink data signal.
- receiving the CSI report after the time unit n+k includes: receiving the CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) the CSI report is active after the time unit n+k.
- receiving the CSI report after the time unit n+k includes: receiving the CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being a time unit n+k+1; wherein, the CSI reporting is active at the time unit n+k+1.
- receiving the CSI report after the time unit n+k includes: receiving the CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) the CSI report is active after a time unit n+k+1.
- the CSI report is not active at the time unit n+k+1.
- that the terminal equipment transmits the downlink data signal at the time unit n refers to that the terminal equipment transmits the downlink data signal ending at the time unit n.
- the time unit is of a slot, or the time unit includes 14 symbols.
- the stability of the system is improved.
- the embodiment of the fifth aspect of this disclosure provides a wireless communication device.
- the device may be, for example, a terminal equipment, or one or some components or assemblies configured in a terminal equipment.
- FIG. 17 is a schematic diagram of the wireless communication device 1700 of the embodiment of this disclosure. As principles of the device for solving problems are similar to that of the method of the embodiment of the first aspect, reference may be made to the method of the embodiment of the first aspect for particular implementations of the device, with identical contents being not going to be described herein any further. As shown in FIG. 17 , the device 1700 includes: a receiving unit 1701 and a processing unit 1702 .
- the receiving unit 1701 receives a downlink data signal at a time unit n, the downlink data signal including an activation/deactivation command acting on a secondary cell.
- the processing unit 1702 performs at least one of the following processing: applying corresponding actions not earlier than a time unit n+k+1; applying actions related to a deactivation timer of the secondary cell at the time unit n+k+1; and applying actions related to CSI report after a time unit n+k, the CSI report being related to or corresponding to the activation/deactivation command.
- the time unit refers to a time unit corresponding to transmission of an uplink control signal, the uplink control signal carrying HARQ-ACK information corresponding to the downlink data signal.
- the k is related to the number (N slot subslot ) of time units included in a 14-symbol slot.
- N slot subslot 1 ⁇ 4 L subslot symbol , L subslot symbol referring to the number of symbols corresponding to the time unit.
- N slot subslot ⁇ 1 ⁇ 4 L subslot symbol ⁇ , L subslot symbol referring to the number of longest symbols corresponding to the time unit.
- N slot subslot ⁇ 1 ⁇ 4 L subslot symbol ⁇ , L subslot symbol referring to the number of shortest symbols corresponding to the time unit.
- applying a corresponding action includes applying a corresponding SCell activation/deactivation action.
- applying a corresponding action does not include applying an action related to CSI report.
- applying a corresponding action does not include applying an action related to the SCell deactivation timer of the secondary cell.
- applying the action related to CSI report after the time unit n+k includes: applying the action related to CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) the CSI report is active after the time unit n+k.
- applying the action related to CSI report after the time unit n+k includes: applying the action related to CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being a time unit n+k+1; wherein the CSI report is active at the time unit n+k+1.
- applying the action related to CSI report after the time unit n+k includes: applying the action related to CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) the CSI report is active after a time unit n+k+1.
- the CSI report is not active at the time unit n+k+1.
- that the terminal equipment receives the downlink data signal at the time unit n refers to that the terminal equipment receives the downlink data signal ending at the time unit n.
- the time unit is of a subslot, or the number of symbols included in the time unit is less than 14.
- FIG. 18 is another schematic diagram of the wireless communication apparatus 1800 of the embodiment of this disclosure.
- the device 1800 includes: a receiving unit 1801 and a processing unit 1802 .
- the receiving unit 1801 receives a downlink data signal at a time unit n, the downlink data signal including an activation/deactivation command acting on a secondary cell.
- the processing unit 1802 performs at least one of the following processing: applying corresponding actions not earlier than a time unit n+k+1; applying actions related to a deactivation timer of the secondary cell at the time unit n+k+1; and applying actions related to CSI report after a time unit n+k, the CSI report being related to or corresponding to the activation/deactivation command, and the time unit referring to a time unit corresponding to transmission of an uplink control signal.
- the k is related to a slot offset or offset between the downlink data signal and the uplink control signal carrying the HARQ-ACK information corresponding to the downlink data signal.
- applying a corresponding action includes applying a corresponding SCell activation/deactivation action.
- applying a corresponding action does not include applying an action related to CSI report.
- applying a corresponding action does not include applying an action related to the SCell deactivation timer of the secondary cell.
- applying the action related to CSI report after the time unit n+k includes: applying the action related to CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) the CSI report is active after the time unit n+k.
- applying the action related to CSI report after the time unit n+k includes: applying the action related to CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being a time unit n+k+1; wherein the CSI report is active at the time unit n+k+1.
- applying the action related to CSI report after the time unit n+k includes: applying the action related to CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) the CSI report is active after a time unit n+k+1.
- the CSI report is not active at the time unit n+k+1.
- that the terminal equipment receives the downlink data signal at the time unit n refers to that the terminal equipment receives the downlink data signal ending at the time unit n.
- the time unit is of a slot, or the time unit includes 14 symbols.
- the stability of the system is improved.
- the embodiment of the sixth aspect of this disclosure provides a wireless communication apparatus.
- the device may be, for example, a network device, or one or some components or assemblies configured in a network device.
- the transmitting unit 1901 transmits a downlink data signal (PDSCH) at a time unit n, the downlink data signal including an activation/deactivation command acting on a secondary cell.
- PDSCH downlink data signal
- the k is related to the number (N slot subslot ) of time units contained in a 14-symbol slot.
- N slot subslot 1 ⁇ 4 L subslot symbol , L subslot symbol referring to the number of symbols corresponding to the time unit.
- N slot subslot ⁇ 1 ⁇ 4 L subslot symbol ⁇ , L subslot symbol referring to the number of longest symbols corresponding to the time unit.
- N slot subslot ⁇ 1 ⁇ 4 L subslot symbol ⁇ , L subslot symbol referring to the number of shortest symbols corresponding to the time unit.
- receiving the CSI report after the time unit n+k includes receiving the CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) CSI report is active after the time unit n+k.
- receiving the CSI report after the time unit n+k includes: receiving the CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being a time unit n+k+1; wherein the CSI report is active at the time unit n+k+1.
- receiving the CSI report after the time unit n+k includes: receiving the CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) the CSI report is active after a time unit n+k+1, wherein, the CSI report is not active at the time unit n+k+1.
- that the network device transmits the downlink data signal at the time unit n refers to that the network device transmits the downlink data signal ending at the time unit n.
- the time unit is of a subslot, or the number of symbols included in the time unit is less than 14.
- FIG. 20 is a schematic diagram of the wireless communication device 2000 of the embodiment of this disclosure. As principles of the device for solving problems are similar to that of the method of the embodiment of the fourth aspect, reference may be made to the method of the embodiment of the fourth aspect for particular implementations of the device, with identical contents being not going to be described herein any further. As shown in FIG. 20 , the device 2000 includes: a transmitting unit 2001 and a receiving unit 2002 .
- the transmitting unit 2001 transmits a downlink data signal at a time unit n, the downlink data signal including an activation/deactivation command acting on a secondary cell.
- the receiving unit 2002 receives CSI report after a time unit n+k, wherein, the CSI report is related to or corresponds to the activation/deactivation command, and the time unit referring to a time unit corresponding to reception of an uplink control signal.
- the k is related to a slot offset or offset between the downlink data signal and the uplink control signal carrying the HARQ-ACK information corresponding to the downlink data signal.
- receiving the CSI report after the time unit n+k includes: receiving the CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) the CSI report is active after a time unit n+k.
- receiving the CSI report after the time unit n+k includes: receiving the CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being a time unit n+k+1; wherein, the CSI report is active at the time unit n+k+1.
- receiving the CSI report after the time unit n+k includes: receiving the CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) the CSI report is active after a time unit n+k+1.
- the CSI report is not active at the time unit n+k+1.
- that the terminal equipment transmits the downlink data signal at the time unit n refers to that the terminal equipment transmits the downlink data signal ending at the time unit n.
- the time unit is of a slot, or the time unit includes 14 symbols.
- the stability of the system is improved.
- FIG. 21 is a schematic diagram of the communication system 2100 .
- the communication system 2100 includes a network device 2101 and a terminal equipment 2102 .
- description is given in FIG. 21 by taking only one terminal equipment and one network device as examples; however, the embodiment of this disclosure is not limited thereto.
- eMBB enhanced mobile broadband
- mMTC massive machine type communication
- URLLC ultra-reliable and low-latency communication
- V2X vehicle to everything
- the network device 2101 transmits a downlink data signal (PDSCH) at a time unit n, the downlink data signal including an activation/deactivation command acting on a secondary cell.
- the terminal equipment 2102 receives the downlink data signal (PDSCH) at the time unit n, and performs at least one of the following processes: applying corresponding actions not earlier than a time unit n+k+1; applying actions related to a deactivation timer of the secondary cell at the time unit n+k+1; and applying actions related to CSI report after a time unit n+k, wherein, the CSI report is related to or corresponds to the activation/deactivation command.
- the network device 2101 receives the CSI report after a time unit n+k.
- the time unit refers to a time unit corresponding to transmission of an uplink control signal, the uplink control signal carrying HARQ-ACK information corresponding to the downlink data signal.
- the uplink control signal carrying HARQ-ACK information corresponding to the downlink data signal.
- the above time unit refers to a time unit corresponding to transmission of the uplink control signal.
- the above time unit refers to a time unit corresponding to transmission of the uplink control signal.
- the embodiment of this disclosure further provides a terminal equipment, such as a UE; however, this disclosure is not limited thereto, and it may also be another equipment.
- FIG. 22 is a schematic diagram of the terminal equipment of the embodiment of this disclosure.
- the terminal equipment 2200 may include a processor 2201 and a memory 2202 , the memory 2202 storing data and a program and being coupled to the processor 2201 .
- this figure is illustrative only, and other types of structures may also be used, so as to supplement or replace this structure and achieve a telecommunications function or other functions.
- the processor 2201 may be configured to execute a program to carry out the wireless communication method as described in the embodiment of the first aspect or the third aspect.
- the terminal equipment 2200 may further include a communication module 2203 , an input unit 2204 , a display 2205 , and a power supply 2206 ; wherein functions of the above components are similar to those in the prior art, which shall not be described herein any further. It should be noted that the terminal equipment 2200 does not necessarily include all the parts shown in FIG. 22 , and the above components are not necessary. Furthermore, the terminal equipment 2200 may include parts not shown in FIG. 22 , and the prior art may be referred to.
- the embodiment of this disclosure further provides a network device, which may be, for example, a base station (gNB).
- a network device which may be, for example, a base station (gNB).
- gNB base station
- this disclosure is not limited thereto, and it may also be another network device.
- FIG. 23 is a schematic diagram of the network device of the embodiment of this disclosure.
- the network device 2300 may include a processor 2301 (such as a central processing unit (CPU)) and a memory 2302 , the memory 2302 being coupled to the processor 2301 .
- the memory 2302 may store various data, and furthermore, it may store a program for data processing, and execute the program under control of the processor 2301 .
- the processor 2301 may be configured to execute the program to carry out the wireless communication method as described in the embodiment of the second or the fourth aspect.
- the network device 2300 may also include a transceiver 2303 , and an antenna 2304 , etc. Functions of the above components are similar to those in the prior art, and shall not be described herein any further. It should be noted that the network device 2300 does not necessarily include all the parts shown in FIG. 23 , and furthermore, the network device 2300 may include parts not shown in FIG. 23 , and the prior art may be referred to.
- An embodiment of this disclosure provides a computer readable program, which, when executed in a terminal equipment, will cause the terminal equipment to carry out the wireless communication method as described in the embodiment of the first or the third aspect.
- An embodiment of this disclosure provides a storage medium storing a computer readable program, which, when executed in a terminal equipment, will cause the terminal equipment to carry out the wireless communication method as described in the embodiment of the first or the third aspect.
- An embodiment of this disclosure provides a computer readable program, which, when executed in a network device, will cause the network device to carry out the wireless communication method as described in the embodiment of the second or the fourth aspect.
- An embodiment of this disclosure provides a storage medium storing a computer readable program, which, when executed in a network device, will cause the network device to carry out the wireless communication method as described in the embodiment of the second or the fourth aspect.
- the above apparatuses and methods of this disclosure may be implemented by hardware, or by hardware in combination with software.
- This disclosure relates to such a computer-readable program that when the program is executed by a logic device, the logic device is enabled to carry out the apparatus or components as described above, or to carry out the methods or steps as described above.
- This disclosure also relates to a storage medium for storing the above program, such as a hard disk, a floppy disk, a CD, a DVD, and a flash memory, etc.
- the methods/apparatuses described with reference to the embodiments of this disclosure may be directly embodied as hardware, software modules executed by a processor, or a combination thereof.
- one or more functional block diagrams and/or one or more combinations of the functional block diagrams shown in the drawings may either correspond to software modules of procedures of a computer program, or correspond to hardware modules.
- Such software modules may respectively correspond to the steps shown in the drawings.
- the hardware module for example, may be carried out by firming the soft modules by using a field programmable gate array (FPGA).
- FPGA field programmable gate array
- the soft modules may be located in an RAM, a flash memory, an ROM, an EPROM, and EEPROM, a register, a hard disc, a floppy disc, a CD-ROM, or any memory medium in other forms known in the art.
- a memory medium may be coupled to a processor, so that the processor may be able to read information from the memory medium, and write information into the memory medium; or the memory medium may be a component of the processor.
- the processor and the memory medium may be located in an ASIC.
- the soft modules may be stored in a memory of a mobile terminal, and may also be stored in a memory card of a pluggable mobile terminal.
- the soft modules may be stored in the MEGA-SIM card or the flash memory device of a large capacity.
- One or more functional blocks and/or one or more combinations of the functional blocks in the drawings may be realized as a universal processor, a digital signal processor (DSP), an application-specific integrated circuit (ASIC), a field programmable gate array (FPGA) or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware component or any appropriate combinations thereof carrying out the functions described in this application.
- DSP digital signal processor
- ASIC application-specific integrated circuit
- FPGA field programmable gate array
- the one or more functional block diagrams and/or one or more combinations of the functional block diagrams in the drawings may also be realized as a combination of computing equipment, such as a combination of a DSP and a microprocessor, multiple processors, one or more microprocessors in communication combination with a DSP, or any other such configuration.
- a wireless communication method including:
- Supplement 2 The method according to supplement 1, wherein, the k is related to the number (N slot subslot ) of time units included in a 14-symbol slot.
- N slot subslot is one of the following:
- N slot subslot 1 ⁇ 4 L subslot symbol , L subplot symbol referring to the number of symbols corresponding to the time unit;
- N slot subslot ⁇ 1 ⁇ 4 L subslot symbol ⁇ , L subslot symbol referring to the number of longest symbols corresponding to the time unit;
- N slot subslot ⁇ 1 ⁇ 4 L subslot symbol ⁇ , L subslot symbol referring to the number of shortest symbols corresponding to the time unit.
- Supplement 5 The method according to supplement 1, wherein the applying corresponding actions includes applying a corresponding SCell activation/deactivation action.
- Supplement 6 The method according to supplement 1, wherein the applying corresponding actions does not include applying an action related to CSI report.
- Supplement 7 The method according to supplement 1, wherein the applying corresponding actions does not include applying an action related to the SCell deactivation timer of the secondary cell.
- Supplement 8 The method according to supplement 1, wherein the applying actions related to CSI report after the time unit n+k includes: applying the actions related to CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) CSI report is active after the time unit n+k.
- Supplement 9 The method according to supplement 1, wherein the applying actions related to CSI report after the time unit n+k includes: applying the actions related to CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being a time unit n+k+1; wherein the CSI report is active at the time unit n+k+1.
- Supplement 10 The method according to supplement 1, wherein the applying actions related to CSI report after the time unit n+k includes: applying the actions related to CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) the CSI report is active after a time unit n+k+1.
- Supplement 11 The method according to supplement 10, wherein, the CSI report is not active at the time unit n+k+1.
- Supplement 13 The method according to supplement 1, wherein the time unit is of a subslot, or, the number of symbols included in the time unit is less than 14.
- a wireless communication method including:
- N slot subslot is one of the following:
- N slot subslot 1 ⁇ 4 L subslot symbol , L subslot symbol referring to the number of symbols corresponding to the time unit;
- N slot subslot ⁇ 1 ⁇ 4 L subslot symbol ⁇ , L subslot symbol referring to the number of longest symbols corresponding to the time unit;
- N slot subslot ⁇ 1 ⁇ 4 L subslot symbol ⁇ , L subslot symbol s referring to the number of shortest symbols corresponding to the time unit.
- Supplement 18 The method according to supplement 14, wherein the receiving the CSI report after the time unit n+k includes: receiving the CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) CSI report is active after the time unit n+k.
- Supplement 21 The method according to supplement 14, wherein the CSI report is not active at the time unit n+k+1.
- Supplement 22 The method according to supplement 14, wherein that the network device transmits the downlink data signal at the time unit n refers to:
- Supplement 23 The method according to supplement 14, wherein the time unit is of a subslot, or the number of symbols included in the time unit is less than 14.
- a wireless communication method including:
- Supplement 25 The method according to supplement 24, wherein the k is related to a slot offset or offset between the downlink data signal and the uplink control signal carrying the HARQ-ACK information corresponding to the downlink data signal.
- Supplement 27 The method according to supplement 24, wherein the applying corresponding actions includes applying a corresponding SCell activation/deactivation action.
- Supplement 28 The method according to supplement 24, wherein the applying corresponding actions does not include applying an action related to CSI report.
- Supplement 29 The method according to supplement 24, wherein the applying corresponding actions does not include applying an action related to the SCell deactivation timer of the secondary cell.
- Supplement 30 The method according to supplement 24, wherein the applying actions related to CSI report after the time unit n+k includes: applying the actions related to CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) CSI report is active after the time unit n+k.
- Supplement 31 The method according to supplement 24, wherein the applying actions related to CSI report after the time unit n+k includes: applying the actions related to CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being a time unit n+k+1; wherein the CSI report is active at the time unit n+k+1.
- Supplement 32 The method according to supplement 24, wherein the applying actions related to CSI report after the time unit n+k includes: applying the actions related to CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) the CSI report is active after a time unit n+k+1.
- Supplement 33 The method according to supplement 32, wherein, the CSI report is not active at the time unit n+k+1.
- Supplement 34 The method according to supplement 24, wherein that the terminal equipment receives the downlink data signal at the time unit n refers to:
- Supplement 35 The method according to supplement 24, wherein the time unit is of a slot, or, the time unit includes 14 symbols.
- a wireless communication method including:
- Supplement 37 The method according to supplement 36, wherein the k is related to a slot offset or offset between the downlink data signal and the uplink control signal carrying the HARQ-ACK information corresponding to the downlink data signal.
- Supplement 39 The method according to supplement 36, wherein the receiving CSI report after the time unit n+k includes: receiving the CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) the CSI report is active after a time unit n+k.
- Supplement 40 The method according to supplement 36, wherein the receiving CSI report after the time unit n+k includes: receiving the CSI report at a time unit after time unit n+k, the time unit after the time unit n+k being a time unit n+k+1; wherein, the CSI report is active at the time unit n+k+1.
- Supplement 41 The method according to supplement 36, wherein the receiving CSI report after the time unit n+k includes: receiving the CSI report at a time unit after the time unit n+k, the time unit after the time unit n+k being an earliest time unit in time units when (at which) the CSI report is active after a time unit n+k+1.
- Supplement 42 The method according to supplement 36, wherein, the CSI report is not active at the time unit n+k+1.
- Supplement 43 The method according to supplement 36, wherein that the terminal equipment transmits the downlink data signal at the time unit n refers to:
- Supplement 44 The method according to supplement 36, wherein the time unit is of a slot, or, the time unit includes 14 symbols.
- Supplement 45 A terminal equipment, including a memory and a processor, the memory storing a computer program, and the processor being configured to execute the computer program to carry out the wireless communication method as described in any one of supplements 1-13 and 24-35.
- a network device including a memory and a processor, the memory storing a computer program, and the processor being configured to execute the computer program to carry out the wireless communication method as described in any one of supplements 14-23 and 36-44.
- a communication system including a terminal equipment and a network device, wherein,
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Abstract
Description
-
- a terminal equipment receives a downlink data signal (PDSCH) at a time unit n, the downlink data signal including an activation/deactivation command acting on a secondary cell; and
- the terminal equipment performs at least one of the following processing:
- applying corresponding actions not earlier than a time unit n+k+1;
- applying actions related to a deactivation timer of the secondary cell at the time unit n+k+1; and
- applying actions related to CSI report after a time unit n+k, wherein, the CSI report is related to or corresponds to the activation/deactivation command,
- the time unit referring to a time unit corresponding to transmission of an uplink control signal, the uplink control signal carrying HARQ-ACK information corresponding to the downlink data signal.
-
- a network device transmits a downlink data signal (PDSCH) at a time unit n, the downlink data signal including an activation/deactivation command acting on a secondary cell; and
- the network device receives CSI report after a time unit n+k, the CSI report being related to or corresponding to the activation/deactivation command;
- the time unit referring to a time unit corresponding to reception of an uplink control signal, the uplink control signal carrying HARQ-ACK information corresponding to the downlink data signal.
-
- a terminal equipment receives a downlink data signal at a time unit n, the downlink data signal including an activation/deactivation command acting on a secondary cell; and
- the terminal equipment performs at least one of the following processing:
- applying corresponding actions not earlier than a time unit n+k+1;
- applying actions related to a deactivation timer of the secondary cell at the time unit n+k+1; and
- applying actions related to CSI report after a time unit n+k, wherein, the CSI report is related to or corresponds to the activation/deactivation command,
- the time unit referring to a time unit corresponding to transmission of an uplink control signal.
-
- a network device transmits a downlink data signal at a time unit n, the downlink data signal including an activation/deactivation command acting on a secondary cell; and
- the network device receives CSI report after a time unit n+k, wherein, the CSI report is related to or corresponds to the activation/deactivation command;
- the time unit referring to a time unit corresponding to reception of an uplink control signal.
-
- a receiving unit configured to receive a downlink data signal (PDSCH) at a time unit n, the downlink data signal including an activation/deactivation command acting on a secondary cell; and
- a processing unit configured to perform at least one of the following processing:
- applying corresponding actions not earlier than a time unit n+k+1;
- applying actions related to a deactivation timer of the secondary cell at the time unit n+k+1; and
- applying actions related to CSI report after a time unit n+k, wherein, the CSI report is related to or corresponds to the activation/deactivation command,
- the time unit referring to a time unit corresponding to transmission of an uplink control signal, the uplink control signal carrying HARQ-ACK information corresponding to the downlink data signal.
-
- a transmitting unit configured to transmit a downlink data signal (PDSCH) at a time unit n, the downlink data signal including an activation/deactivation command acting on a secondary cell; and
- a receiving unit configured to receive CSI report after a time unit n+k, wherein, the CSI report is related to or corresponds to the activation/deactivation command;
- the time unit referring to a time unit corresponding to reception of an uplink control signal, the uplink control signal carrying HARQ-ACK information corresponding to the downlink data signal.
-
- a receiving unit configured to receive a downlink data signal at a time unit n, the downlink data signal including an activation/deactivation command acting on a secondary cell; and
- a processing unit configured to perform at least one of the following processing:
- applying corresponding actions not earlier than a time unit n+k+1;
- applying actions related to a deactivation timer of the secondary cell at the time unit n+k+1; and
- applying actions related to CSI report after a time unit n+k, wherein, the CSI report is related to or corresponds to the activation/deactivation command,
- the time unit referring to a time unit corresponding to transmission of an uplink control signal.
-
- a transmitting unit configured to transmit a downlink data signal at a time unit n, the downlink data signal including an activation/deactivation command acting on a secondary cell; and
- a receiving unit configured to receive CSI report after a time unit n+k, the CSI report being related to or corresponding to the activation/deactivation command;
- the time unit referring to a time unit corresponding to reception of an uplink control signal.
-
- the terminal equipment receives a PDSCH at a time unit n, the PDSCH includes an activation or deactivation signaling for a secondary cell, and the PDSCH ends at a slot n, the terminal equipment may,
- apply the corresponding actions, such as corresponding actions of activation or deactivation of a secondary cell, not earlier than the time unit n+k+1; and/or,
- apply an action related to a deactivation timer of the secondary cell at a time unit n+k+1; and/or,
- apply an action related to CSI report after the time unit n+k, such as applying an action related to CSI report at a time unit after the time unit n+k, the time unit referring to an earliest time slot in time slots when (at which) the CSI report is active.
k=k 1+3N slot subframe,μ;
-
- where, Nslot subframe,μ refers to the number of slots contained in each subframe when an SCS (subcarrier spacing) corresponding to the transmission of the uplink control signal (such as PUCCH transmission) is configured as μ, and k1 is indicated by a PDSCH-to-HARQ_feedback timing indicator field in scheduling DCI corresponding to the PDSCH.
-
- 301: a terminal equipment receives a downlink data signal at a time unit n, the downlink data signal including an activation/deactivation command acting on a secondary cell; and
- 302: the terminal equipment performs at least one of the following processing: applying corresponding actions not earlier than a time unit n+k+1; applying actions related to a deactivation timer of the secondary cell at the time unit n+k+1; and applying actions related to CSI report after a time unit n+k, the CSI report being related to or corresponding to the activation/deactivation command.
k=k 1+3N slot subframe,μ N slot subslot;
-
- where, Nslot subframe,μ refers to the number of slots contained in each subframe when the SCS configuration corresponding to the transmission of the uplink control signal is μ, the slot referring to the above slot containing 14 symbols; Nslot subslot refers to the number of time units contained in a 14-symbol slot, as described above, which may be 1, 2 or 7, or other values; k1 is related to the transmission of the uplink control signal carrying the HARQ-ACK information corresponding to the downlink data signal, and k1 is indicated by a PDSCH-to-HARQ_feedback timing indicator field in scheduling DCI corresponding to the downlink data signal. Reference may be made to related technologies for the specific meanings of Nslot subframe,μ and k1, which shall not be described herein any further.
Lsubslot symbol referring to the number of symbols corresponding to the time unit.
Lsubslot symbol referring to the number of longest symbols corresponding to the time unit. For example, a 14-symbol slot is divided into 4 subslots, wherein lengths of each subslot are: 3 symbols, 4 symbols, 3 symbols, and 4 symbols, respectively. At this moment, the number of longest symbols corresponding to the time unit is 4, then Nslot subslot=4.
Lsubslot symbol referring to the number of shortest symbols corresponding to the time unit. For example, a 14-symbol slot is divided into 4 subslots, wherein lengths of each subslot are: 3 symbols, 4 symbols, 3 symbols, and 4 symbols, respectively. At this moment, the number of shortest symbols corresponding to the time unit is 3, then Nslot subslot=4.
-
- 901: a network device transmits a downlink data signal at a time unit n, the downlink data signal including an activation/deactivation command acting on a secondary cell; and
- 902: the network device receives CSI report after a time unit n+k, the CSI report being related to or corresponding to the activation/deactivation command, the time unit referring to a time unit corresponding to reception of an uplink control signal, the uplink control signal carrying HARQ-ACK information corresponding to the downlink data signal.
k=k 1+3N slot subframe,μ N slot subslot;
-
- where,
- Nslot subframe,μ refers to the number of slots contained in each subframe when SCS configuration corresponding to the reception of uplink control signal is p;
- Nslot subslot refers to the number of the time units contained in a 14-symbol slot;
- k1 is related to the transmission of the uplink control signal carrying the HARQ-ACK information corresponding to the downlink data signal, and k1 is indicated by a PDSCH-to-HARQ_feedback timing indicator field in scheduling DCI corresponding to the downlink data signal.
Lsubslot symbol referring to the number of symbols corresponding to the time unit.
Lsubslot symbol referring to the number of longest symbols corresponding to the time unit.
Lsubslot symbol referring to the number of shortest symbols corresponding to the time unit.
-
- 1001: a terminal equipment receives a downlink data signal at a time unit n, the downlink data signal including an activation/deactivation command acting on a secondary cell; and
- 1002: the terminal equipment performs at least one of the following processing: applying corresponding actions not earlier than a time unit n+k+1; applying actions related to a deactivation timer of the secondary cell at the time unit n+k+1; and applying actions related to CSI report after a time unit n+k, the CSI report being related to or corresponding to the activation/deactivation command.
k=k′ 1+3N slot subframe,μ;
-
- where, Nslot subframe,μ refers to the number of slots included in each subframe when the SCS configuration corresponding to the transmission of the uplink control signal is p. The slot here refers to the above slot including 14 symbols, and k′1 refers to a slot offset or offset between the downlink data signal and the uplink control signal carrying the HARQ-ACK information corresponding to the downlink data signal, that is, when a terminal equipment receives a downlink data signal at a slot n, it transmits an uplink control signal carrying corresponding HARQ-ACK feedback information at a slot n+k′1. Reference may be made to related technologies for a specific meaning of Nslot subframe,μ, which shall not be described herein any further.
-
- 1601: a network device transmits a downlink data signal at a time unit n, the downlink data signal including an activation/deactivation command acting on a secondary cell; and
- 1602: the network device receives CSI report after a time unit n+k, wherein, the CSI report is related to or corresponds to the activation/deactivation command, and the time unit referring to a time unit corresponding to reception of an uplink control signal.
k=k′ 1+3N slot subframe,μ;
-
- where,
- Nslot subframe,μ refers to the number of slots included in each subframe when the SCS configuration corresponding to the reception of the uplink control signal is μ,
- and k′1 refers to a slot offset or offset between the downlink data signal and the uplink control signal carrying the HARQ-ACK information corresponding to the downlink data signal.
k=k 1+3N slot subframe,μ N slot subslot;
-
- where,
- Nslot subframe,μ refers to the number of slots contained in each subframe when the SCS configuration corresponding to the transmission of the uplink control signal is p;
- Nslot subslot refers to the number of time units contained in a 14-symbol slot;
- k1 is related to the transmission of the uplink control signal carrying the HARQ-ACK information corresponding to the downlink data signal, and k1 is indicated by a PDSCH-to-HARQ_feedback timing indicator field in scheduling DCI corresponding to the downlink data signal.
Lsubslot symbol referring to the number of symbols corresponding to the time unit.
Lsubslot symbol referring to the number of longest symbols corresponding to the time unit.
Lsubslot symbol referring to the number of shortest symbols corresponding to the time unit.
k=k′ 1+3N slot subframe,μ;
-
- where,
- Nslot subframe,μ refers to the number of slots included in each subframe when the SCS configuration corresponding to the transmission of the uplink control signal is μ,
- and k′1 refers to a slot offset or offset between the downlink data signal and the uplink control signal carrying the HARQ-ACK information corresponding to the downlink data signal.
k=k 1+3N slot subframe,μ N slot subslot;
-
- where,
- Nslot subframe,μ refers to the number of slots contained in each subframe when SCS configuration corresponding to reception of the uplink control signal is p;
- Nslot subslot refers to the number of the time units contained in a 14-symbol slot;
- k1 is related to the transmission of the uplink control signal carrying the HARQ-ACK information corresponding to the downlink data signal, and k1 is indicated by a PDSCH-to-HARQ_feedback timing indicator field in scheduling DCI corresponding to the downlink data signal.
Lsubslot symbol referring to the number of symbols corresponding to the time unit.
Lsubslot symbol referring to the number of longest symbols corresponding to the time unit.
Lsubslot symbol referring to the number of shortest symbols corresponding to the time unit.
k=k′ 1+3N slot subframe,μ;
-
- where,
- Nslot subframe,μ refers to the number of slots included in each subframe when the SCS configuration corresponding to the reception of the uplink control signal is μ,
- and k′1 refers to a slot offset or offset between the downlink data signal and the uplink control signal carrying the HARQ-ACK information corresponding to the downlink data signal.
-
- receiving a downlink data signal by a terminal equipment at a time unit n, the downlink data signal including an activation/deactivation command acting on a secondary cell; and
- performing at least one of the following processing by the terminal equipment:
- applying corresponding actions not earlier than a time unit n+k+1;
- applying actions related to a deactivation timer of the secondary cell at the time unit n+k+1; and
- applying actions related to CSI report after a time unit n+k, the CSI report being related to or corresponding to the activation/deactivation command,
- the time unit referring to a time unit corresponding to transmission of an uplink control signal, the uplink control signal carrying HARQ-ACK information corresponding to the downlink data signal.
k=k 1+3N slot subframe,μ N slot subslot;
-
- where, Nslot subframe,μ refers to the number of slots contained in each subframe when the SCS slot configuration corresponding to the transmission of the uplink control signal is p;
- Nslot subslot refers to the number of time units contained in a 14-symbol slot;
- k1 is related to the transmission of the uplink control signal carrying the HARQ-ACK information corresponding to the downlink data signal, and k1 is indicated by a PDSCH-to-HARQ_feedback timing indicator field in scheduling DCI corresponding to the downlink data signal.
Lsubplot symbol referring to the number of symbols corresponding to the time unit;
Lsubslot symbol referring to the number of longest symbols corresponding to the time unit; and
Lsubslot symbol referring to the number of shortest symbols corresponding to the time unit.
-
- that the terminal equipment receives the downlink data signal ending at the time unit n.
-
- transmitting a downlink data signal by a network device at a time unit n, the downlink data signal including an activation/deactivation command acting on a secondary cell; and
- receiving CSI report by the network device after a time unit n+k, wherein, the CSI report is related to or corresponds to the activation/deactivation command;
- the time unit referring to a time unit corresponding to reception of an uplink control signal, the uplink control signal carrying HARQ-ACK information corresponding to the downlink data signal.
-
- the k is related to the number (Nslot subslot) of time units contained in a 14-symbol slot.
k=k 1+3N slot subframe,μ N slot subslot;
-
- where,
- Nslot subframe,μ refers to the number of slots contained in each subframe when SCS configuration corresponding to reception of the uplink control signal is p;
- Nslot subslot refers to the number of the time units contained in a 14-symbol slot;
- k1 is related to the transmission of the uplink control signal carrying the HARQ-ACK information corresponding to the downlink data signal, and k1 is indicated by a PDSCH-to-HARQ_feedback timing indicator field in scheduling DCI corresponding to the downlink data signal.
Lsubslot symbol referring to the number of symbols corresponding to the time unit;
Lsubslot symbol referring to the number of longest symbols corresponding to the time unit; and
Lsubslot symbol s referring to the number of shortest symbols corresponding to the time unit.
-
- that the network device transmits the downlink data signal ending at the time unit n.
-
- receiving a downlink data signal by a terminal equipment at a time unit n, the downlink data signal including an activation/deactivation command acting on a secondary cell; and
- performing at least one of the following processing by the terminal equipment:
- applying corresponding actions not earlier than a time unit n+k+1;
- applying actions related to a deactivation timer of the secondary cell at the time unit n+k+1; and
- applying actions related to CSI report after a time unit n+k, the CSI report being related to or corresponding to the activation/deactivation command;
- the time unit referring to a time unit corresponding to transmission of an uplink control signal.
k=k′ 1+3N slot subframe,μ;
-
- where,
- Nslot subframe,μ refers to the number of slots included in each subframe when the SCS configuration corresponding to the transmission of the uplink control signal is μ,
- and k′1 refers to a slot offset or offset between the downlink data signal and the uplink control signal carrying the HARQ-ACK information corresponding to the downlink data signal.
-
- that the terminal equipment receives the downlink data signal ending at the time unit n.
-
- transmitting a downlink data signal by a network device at a time unit n, the downlink data signal including an activation/deactivation command acting on a secondary cell; and
- receiving CSI report by the network device after a time unit n+k, the CSI report being related to or corresponding to the activation/deactivation command,
- and the time unit referring to a time unit corresponding to reception of an uplink control signal.
k=k′ 1+3N slot subframe,μ;
-
- where, Nslot subframe,μ refers to the number of slots included in each subframe when the SCS configuration corresponding to the reception of the uplink control signal is μ,
- and k′1 refers to a slot offset or offset between the downlink data signal and the uplink control signal carrying the HARQ-ACK information corresponding to the downlink data signal.
-
- that the terminal equipment transmits the downlink data signal ending at the time unit n.
-
- the terminal equipment is configured to carry out the method as described in any one of supplements 1-13, and the network device is configured to carry out the method as described in any one of supplements 14-23, or
- the terminal equipment is configured to carry out the method as described in any one of supplements 24-35, and the network device is configured to carry out the method as described in any one of supplements 36-44.
Claims (7)
k=k′ 1+3N slot subframe,μ;
k=k′ 1+3N slot subframe,μ;
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| Qualcomm Incorporated, "Offline summary for NR timing ambiguity", Agenda Item: 7.1.3, 3GPP TSG RAN WG1 Meeting #98bis, R1-1911529, Chongqing, China, Oct. 14-20, 2019, cited in KROA. |
| Sony, "UCI enhancements for eURLLC", Agenda Item: 7.2.6.2, 3GPP TSG-RAN WG1 Meeting #97, R1-1906841, Reno, USA, May 13-17, 2019. |
Also Published As
| Publication number | Publication date |
|---|---|
| JP2023513366A (en) | 2023-03-30 |
| US20250260457A1 (en) | 2025-08-14 |
| CN115039362B (en) | 2024-04-02 |
| EP4106245A4 (en) | 2023-04-05 |
| WO2021159400A1 (en) | 2021-08-19 |
| US20220393739A1 (en) | 2022-12-08 |
| CN115039362A (en) | 2022-09-09 |
| EP4106245A1 (en) | 2022-12-21 |
| JP7597291B2 (en) | 2024-12-10 |
| KR20220127885A (en) | 2022-09-20 |
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